Impacts of cell topology, parameter distributions and current profile on the usable power and energy of lithium-ion batteries

A. Fill, K. Birke
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引用次数: 8

Abstract

In order to meet the energy and power requirements of large-scale battery applications, cells have to be connected in serial and parallel configuration. For the purpose of understanding the assembly of parallel-connected cells is referred to as logical cell. Caused by current and State of Charge (SoC) inhomogeneities between the serial and parallel cells, the usable power and energy will differ from the installed values. These differences are affected by the cell topology, cell parameter distributions and the current profile. The influences of these parameters are investigated by Monte Carlo simulations with Gaussian distributed cell parameters. The $5\sigma$ values of the usable power decrease almost logarithmically with increasing number of serial and parallel cells. The power is primarily limited by the logical cell with the highest current distribution, which in turn depends principally on the differences in cell parameters. In a battery the maximum difference of cell parameters statistically increase with the number of connected cells. Two further effects influence the usable energy. The Open Circuit Voltage (OCV) bending leads to a SoC balancing at the end of discharge. And the standard deviation of the logical cell capacity distribution decreases by square root with increasing number of parallel cells. These effetcs are leading to a higher usable energy by connecting the cells in parallel compared to a corresponding serial-connection, especially for discharging. Furthermore with increasing standard deviation of the cells resistance and capacity distributions a linear decrease of the usable power and energy is found.
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电池拓扑结构、参数分布和电流分布对锂离子电池可用功率和能量的影响
为了满足大规模电池应用对能量和功率的要求,电池必须以串行和并联的方式连接。为了便于理解,将并联单元的组装称为逻辑单元。由于串联和并联电池之间的电流和充电状态(SoC)不均匀性,可用功率和能量将与安装值不同。这些差异受到单元拓扑、单元参数分布和当前配置文件的影响。利用高斯分布单元参数进行蒙特卡罗模拟,研究了这些参数的影响。可用功率的$5\sigma$值随着串行和并行电池数量的增加几乎呈对数递减。功率主要受到具有最高电流分布的逻辑电池的限制,而这又主要取决于电池参数的差异。在电池中,电池参数的最大差异随连接电池的数量而增加。还有两个影响可用能量的因素。开路电压(OCV)弯曲导致放电结束时SoC平衡。随着并联单元数的增加,逻辑单元容量分布的标准差呈平方根递减。与相应的串行连接相比,这些效应通过并联电池导致更高的可用能量,特别是在放电时。此外,随着电池电阻和容量分布的标准差增大,可用功率和可用能量呈线性下降。
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